WO1998045703A1 - Method for measuring stress levels in polymeric compositions - Google Patents
Method for measuring stress levels in polymeric compositions Download PDFInfo
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- WO1998045703A1 WO1998045703A1 PCT/US1998/006676 US9806676W WO9845703A1 WO 1998045703 A1 WO1998045703 A1 WO 1998045703A1 US 9806676 W US9806676 W US 9806676W WO 9845703 A1 WO9845703 A1 WO 9845703A1
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- microparticles
- polymeric
- composition
- stress
- level
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/44—Resins; Plastics; Rubber; Leather
- G01N33/442—Resins; Plastics
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/44—Resins; Plastics; Rubber; Leather
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01L—MEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
- G01L1/00—Measuring force or stress, in general
- G01L1/12—Measuring force or stress, in general by measuring variations in the magnetic properties of materials resulting from the application of stress
- G01L1/125—Measuring force or stress, in general by measuring variations in the magnetic properties of materials resulting from the application of stress by using magnetostrictive means
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N11/00—Investigating flow properties of materials, e.g. viscosity, plasticity; Analysing materials by determining flow properties
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N27/00—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
- G01N27/72—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating magnetic variables
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T436/00—Chemistry: analytical and immunological testing
- Y10T436/13—Tracers or tags
Definitions
- the invention relates to measuring stress levels in polymers or polymeric compositions.
- Processes for manufacturing polymeric compositions often require adding or combining precise amounts of pre- polymeric components forming these compositions, particularly where these components react together to form the composition.
- Devices dispensing these components can malfunction periodically and/or systematically, resulting in the deposition of an incorrect mix of the components. These malfunctions can significantly affect the quality of the resulting products.
- the invention features a method for measuring- the level of stress in polymers or polymeric compositions within a given volume that includes providing a polymeric or pre-polymeric composition containing a plurality of microparticles having a non-ferromagnetic or non-ferrimagnetic core provided with a coating that is ferromagnetic or ferrimagnetic wherein the microparticles are substantially uniformly dispersed throughout the composition.
- the microparticles have a detectable magnetic characteristic which correlates with the level of stress in the composition.
- the invention provides a method for measuring the level of stress in polymers or polymeric compositions within a given volume that includes combining the polymeric or pre-polymeric composition with a plurality of microparticles having a non-ferromagnetic or non-ferrimagnetic core provided with a coating that is ferromagnetic or ferrimagnetic to form an admixture in which the microparticles are substantially uniformly dispersed throughout the composition.
- the microparticles have a detectable magnetic characteristic which correlates with the level of stress in the composition.
- the invention provides a method for determining the stress level in said admixture during dispensing of said admixture.
- the invention provides a method for determining the stress level in a polymeric reaction mixture.
- the invention provides a method of measuring inductance or inductive reactance of a sample comprising the steps of measuring the inductance or the inductive reactance of the sample; and correcting said measurement of inductance or inductive reactance for temperature.
- a "pre-polymeric composition” refers both to compositions whose molecular weight has not been sufficiently advanced to qualify as a polymeric composition (e.g., partially polymerized pre-polymeric syrups), as well as individual reactants in the form of monomers or oligomers that react with themselves or with other reactants to form a polymeric composition.
- the core of the microparticles is selected from the group consisting of glass bubbles, glass beads, glass fibers, fumed silica particles, fused silica particles, mica flakes, polymeric particles, and combinations thereof, with glass bubbles being particularly desired.
- the coating (which may be provided over substantially all or a portion of the surface of the core) to be a ferromagnetic or ferrimagnetic material.
- suitable ferromagnetic or ferrimagnetic materials include nickel, iron, alloys thereof, and oxides thereof.
- Stainless steel coatings are particularly desirable. It is desirable for the microparticles to have an average major dimension in the range of from about 10 micrometers to about 1 millimeter.
- the average thickness of the coating is in the range of from about 0.1 nanometers to about 5 micrometers, and more desirably from about 1 nanometer to about 200 nanometers. It is desirable for the amount of microparticles provided in the admixture to be in the range of from about 0.01% to about 80% by volume. It is also desirable for the microparticles to be in an amount in the range of from about 0.01% to about 50% by volume.
- the method of the invention is used to determine the level of externally applied forces on the composition.
- the method of the invention is used to measure the degree of cure of an adhesive composition.
- the method of the invention is used to determine the quality of adhesion of an adhesive or adhesive composition to a substrate.
- the method of invention is used to determine the direction of internal stress of a polymeric composition.
- a useful polymeric composition is an adhesive composition.
- desired polymeric compositions include epoxy resins (e.g., base-cured epoxies, acid-cured epoxies, and addition-cured epoxies), polyurethanes, acrylates, polyorganosiloxanes, and phenolics.
- the invention provides a reliable method for measuring the levels of stress in a polymeric or pre-polymeric composition within a given volume using microparticle "tags" having a detectable magnetic characteristic.
- the measurement of the stress level in a polymeric composition can then be correlated with and used to determine, for example, the degree of cure of an adhesive or polymer composition, the level of applied external forces, the level or quality of adhesion of an adhesive to a substrate and the internal stress due to heating and cooling cycles.
- the microparticles are easily fabricated and are generally chemically inert and stable over reasonable periods of time.
- microparticles can also be used to determine the volume of the composition as described in copending patent application entitled “Method for Measuring the Quantity of a Polymeric or Pre- polymeric Composition," PCT Application No. US96/12197, filed July 24, 1996, Publication No. WO97/33162, the entire contents of which is incorporated herein by reference.
- microparticles are very similar to those of their uncoated counterparts.
- metal-coated glass microbubbles impart substantially the same rheological behavior and mechanical properties as their uncoated counterparts.
- the microparticles can be substituted virtually one-for-one for their uncoated counterparts on a volume basis without adversely affecting the properties of the final composition.
- Figure 1 is a plot of inductive reactance versus loading of coated microparticles in percent volume reaction.
- Figure 2 is a plot of inductive reactance versus coating thickness of the incorporated coated microparticles.
- Figure 3 is a plot of permeability versus coating thickness of the incorporated coated microparticles.
- Figure 4 is a plot of inductive reactance versus permeability.
- Figure 5 is an EddyscopeTM scan of an aluminum-epoxy-aluminum structure.
- Figure 6 is a plot of inductance versus coated microparticle loading in percent volume fraction.
- Figure 7 is a plot of capacitance versus coated microparticle loading in percent volume fraction.
- Figure 8 is an EddyscopeTM scan of a thermoplastic tray containing coated microparticles.
- Figure 9 is a physical map of the tray of Figure 8 made using the EddyscopeTM readings.
- Figure 10 is a plot of capacitance versus displacement along a width of the tray of Figure 8 with a schematic of the cross section of the tray shown below the plot.
- Figure 11 is an EddyscopeTM scan indicating the different reading obtained with different ratios of one component of an adhesive mixed with a second component of an adhesive wherein one component contains microparticles.
- Figure 12 is an EddyscopeTM scan indicating the different readings obtained from a volume of composition containing various loadings of coated microparticles.
- Figure 13 is a plot of sample inductance (L stressed minus L unstressed) versus applied compressive stress.
- Figure 14 is a plot of the change in inductance normalized to permeability versus applied stress (tensile and compressive).
- Figure 15 is a plot of the sample inductance during cure minus the sample inductance after 25 hours of cure versus time of cure.
- Figure 16 is a plot of inductance of a sample minus the sample inductance at 13°C versus temperature of the sample.
- Figure 17 is a plot of the EddyscopeTM response versus time for a sample subjected to an oscillating sinusoidal wave input at a frequency of 2 hertz.
- Figure 18 is a plot of the EddyscopeTM response versus time for a sample subjected to an oscillating sinusoidal wave input at a frequency of 60 hertz.
- Figure 19 is a plot of the EddyscopeTM response versus time for a sample subjected to an oscillating sinusoidal wave input at a frequency of 500 hertz.
- Figure 20 is a plot of the EddyscopeTM response versus time of a sample subjected to an oscillating triangular wave input at a frequency of 60 hertz.
- Figure 21 is a plot of the change in inductance normalized to sample permeability versus time for two epoxy adhesive samples during curing. Description of Desired Embodiments Materials
- the microparticles For determining the volume of a polymeric or a pre-polymeric composition, it is desirable for the microparticles to have a non-ferromagnetic or non- ferrimagnetic core and a coating that is ferromagnetic, ferrimagnetic, or electrically conductive. For determining the stress level of a polymeric or pre-polymeric composition, it is desirable for the microparticles to have a non-ferromagnetic or non-ferrimagnetic core and a coating that is ferromagnetic or ferrimagnetic.
- the microparticles can have a variety of shapes, including substantially spherical, elongated, or flat shapes. The shape may be selected to impart desired flow properties to the corresponding admixture given a selected concentration of microparticles in the admixture.
- the dimensions of the microparticles can vary, but it is desirable for the microparticles to have an average major dimension smaller than 1 centimeter and more desirably in the range of from about 10 micrometers to about 1 millimeter. It is desirable for the coating to have an average thickness in the range of from about 1 nanometer to about 5 micrometers, and more desirably from about 1 nanometer to about 200 nanometers.
- the coating can, but need not, cover the entire surface of the core. For example, the coating can form islands on the surface of the core, or the coating material can cover substantially all of the surface.
- the microparticles can have multiple coatings, partial coatings, or combinations thereof having different metals. Additionally, the microparticles can have one or more non-metallic, inorganic, or organic coatings. Such additional coatings may be used to provide or modify color, stability, particle matrix behavior or abrasivity of the microparticles.
- Suitable cores include materials typically used as pigments, reinforcing agents, rheology modifiers, density control agents, or other functional additives in polymeric and pre-polymeric compositions. Examples include glass bubbles, glass beads, glass fibers, fumed silica particles, fused silica particles, mica flakes, single- and multi-component polymeric particles, and combinations thereof. Desirable cores include hollow structures (e.g., in the form of bubbles) to minimize the overall amount of material added to the pre-polymeric or polymeric composition. Desirable core materials include glass microbubbles, e.g., commercially available from Minnesota Mining and Manufacturing Company, Saint Paul, MN under the trade name ScotchliteTM.
- Desired core materials include materials that are already within the compositions of interest so that the coated microparticles can be substituted for the uncoated microparticles in the composition. In this way, the composition can be tagged without requiring reformulation of the composition to obtain the desired rheological properties.
- the coating for the microparticles generally can be any ferromagnetic, ferrimagnetic, or electrically conductive material that can be coated onto the surface of the microparticle core.
- a desired coating should be chemically inert in the relevant compositions under the relevant conditions and stable with respect to degradation and leaching.
- Suitable ferromagnetic materials include iron, nickel, cobalt, alloys including one or more of these metals, and oxides including one or more of these metals.
- Appropriate electrically conductive materials include coatable metals, metal alloys, and metal compounds, such as carbides, oxides, nitrides, and suicides. Desired conductive metals for use in coatings include copper, aluminum, and silver.
- the desired material for the coating is stainless steel, which is both electrically conductive and ferromagnetic. If the coating material is ferromagnetic or ferrimagnetic, the core can be an electrically conductive, a non-ferromagnetic, or a non-ferrimagnetic material, in which case the measurements will rely on the ferromagnetic or ferrimagnetic properties of the coating.
- the coating for the microparticles generally can be any ferromagnetic, or ferrimagnetic material that can be coated onto the surface of the microparticle core.
- a desired coating should be chemically inert in the relevant compositions under the relevant conditions and stable with respect to degradation and leaching. Suitable ferromagnetic materials include iron, nickel, alloys including one or more of these metals or other ferromagnetic metals, and oxides including one or more of these metals.
- the desired material for the coating is stainless steel which is ferromagnetic as opposed to non-magnetic stainless steel.
- the core can be an electrically conductive, a non-ferromagnetic, or a non-ferrimagnetic material, in which case the measurements will rely on the ferromagnetic or ferrimagnetic properties of the coating.
- a variety of techniques can be used to apply the coating to the core. These techniques include sputtering, vapor deposition, electroless plating, and chemical vapor deposition.
- Fiber shaped particles having a coating that is magnetic include fiber shaped particles having a coating that is magnetic.
- the desired fiber shaped particles have an aspect ratio of 2 or greater and have a diameter of about 15.8 microns. It is desirable for the fiber shaped particles to be made of glass.
- An example of useful glass fibers is FiberglasTM Milled Glass Fibers 731 ED 1/32 inch, commercially available from Owens Corning, Toledo, OH.
- Useful magnetic materials for use as a coating on the fiber shaped particle include iron, nickel, alloys including one or more of these metals or other ferromagnetic metals, and oxides including one or more of these metals.
- a desired coating for fiber shaped particles is stainless steel.
- the coated fibers will have an average coating thickness in the range of from about 1 nanometer to about 5 micrometers, and more desirably from about 1 to about 200 nanometers.
- the microparticles are added to a polymeric or pre-polymeric composition to form an admixture that is a tagged composition.
- an admixture that is a tagged composition.
- the composition For measuring the stress level in a composition, it is desirable for the composition to contain in the range of from about 0.01% to about 80% by volume of the microparticles, and more desirably in the range of from about 0.1% and 30% by volume of the microparticles.
- pre-polymeric and polymeric compositions can be used in conjunction with the microparticles. These polymeric or pre-polymeric compositions can be either thermosetting or thermoplastic and can be amorphous or semi-crystalline.
- the material will show an elastic-mechanical response, that is, the material will directionally transmit stress. This ability may be dependent upon the frequency of the measurement or the temperature of the material when the measurement is taken.
- thermosetting or thermoplastic polymer compositions which are shaped by extrusion, molding, calendering, casting, and other processes into three-dimensional forms.
- Such shaped forms include films, pipes, fibers, multilayer constructions, laminates, foams, gaskets, wood products, and particle-filled and fiber reinforced composites.
- Other shaped polymer compositions include those used as vehicle parts, containers, architectural members, paving materials, furniture, bridge members, and other structural elements.
- Particularly useful polymer compositions are those that can be incorporated into or with other objects. Such compositions include adhesives, sealants, caulks, gap-filling materials, coatings, conforming wraps and plastisol products. Desired polymeric adhesive compositions include crosslinked thermosetting systems such as epoxies (including base-cured epoxies, acid-cured epoxies, and addition- cured epoxies), polyurethanes, silicone resins, acrylate polymers, polysiloxanes, polyorganosiloxanes, and phenolics, as well as blends or hybrids of these types of systems. These same compositions may also be utilized in non-adhesive applications of the methods of the invention.
- epoxies including base-cured epoxies, acid-cured epoxies, and addition- cured epoxies
- silicone resins acrylate polymers
- polysiloxanes polyorganosiloxanes
- Useful hot melt adhesives include various polyolefins, polyesters, polyamides, polycarbonates, polyurethanes, polyvinylacetates, higher molecular weight waxes, and related copolymers and blends. Additionally, applicable adhesive compositions would be those which are formed into films and tapes including those which are pressure-sensitive at any point of use.
- One suitable class of adhesives includes adhesive compositions such as structural adhesives which include epoxy resins (e.g., derived from diglycidyl ethers of Bisphenol A or novolak resins).
- Structural adhesives are used in a variety of manufacturing situations including significant use in the automotive industry to bond parts together to reduce the need for welding, to improve so-called noise- vibration-harshness (NVH) characteristics, or to increase the overall stiffness of the part.
- NSH noise- vibration-harshness
- These materials which are well-known, are typically prepared by reacting two or more pre-polymeric reagents with each other to form an intermediate "B- stage" resin, which is subsequently further cured to form the final product.
- thermoplastic polymeric compositions include polystyrene, polyethylene terephthalate, polymethylmethacrylate, polyethylene, polypropylene, polyvinylacetate, polyamide, polyvinyl chloride, polyacrylonitrile, polyethylene naphthalate, polyether ketone, polysulfone, polycarbonate, and copolymers thereof.
- Other useful thermoplastics include engineering thermoplastics and thermoplastic elastomers.
- a thermoplastic composition containing microparticles can be made by generally heating the thermoplastic resin above its melting point or glass transition temperature until a suitable melt viscosity is reached, adding the microparticles, blending, and then allowing the mixture to cool.
- the pre-polymeric and polymeric compositions may contain various adjuvants designed to enhance the properties of the resin before or after curing, including reactive and nonreactive diluents, plasticizers, toughening agents, and coupling agents.
- Other materials which can be added to the composition include thixotropic agents to provide flow control (e.g., fumed silica), pigments, fillers (e.g., talc, calcium carbonate, silica, magnesium, calcium sulfate, beryllium aluminum silicate), clays, glass and ceramic particles (e.g., beads, bubbles, and fibers), and reinforcing materials (e.g., organic and inorganic fibers and granular or spherical particles).
- thixotropic agents to provide flow control (e.g., fumed silica), pigments, fillers (e.g., talc, calcium carbonate, silica, magnesium, calcium sulfate, beryllium aluminum silicate), clays, glass
- microparticles can be used in a variety of measurement protocols.
- One of the measurements that can be made is of the quantity or volume of the composition containing the microparticles. Measuring the electromagnetic properties of the microparticles provides a measure of the number of microparticles.
- the microparticles can be present in a known concentration within the composition to be measured to provide the quantity determination of the composition.
- the microparticles can be used in a fixed concentration, where the quantity of the composition incorporating the microparticles is determined from a standard curve produced using material with the same fixed concentration.
- the measurement will provide information on the flow and, correspondingly, the rate of deposition. If the composition is fixed relative to a substrate or container, the measurements can provide information on the distribution of the composition throughout the substrate or container.
- the material being dispensed can be a single polymeric or pre-polymeric composition that may or may not be later polymerized or crosslinked. This single composition would be used to form the admixture including the microparticles.
- the material being dispensed can include two or more polymeric or pre-polymeric compositions that are mixed to form a curable resin, e.g., an intermediate "B-stage" resin.
- a curable resin e.g., an intermediate "B-stage" resin.
- One or more of the components within the curable resin can be combined with a given volume fraction of microparticles.
- the electromagnetic properties of the microparticles can then be monitored to measure the amount of the reactant(s) dispensed into the reaction mixture. If one of two components is provided with microparticles, the coated microparticles in the reaction mixture can be measured to determine the quantity of reaction mixture.
- each component can be mixed with the same or different microparticles. Then, each component can be measured, with or without an additional measurement of the curable resin mixture, to determine whether the components have been mixed together in the correct ratio. Any variation from the desired amount can be noted and/or used to adjust the amount being dispensed. If microparticles with different electromagnetic characteristics, e.g., one ferromagnetic and the other non-ferromagnetic, are placed in the two different components, measurements on the two components being dispensed can determine if the correct component is being dispensed from the particular dispenser. Another application involves use of the microparticles in the nondestructive testing of articles incorporating a polymeric or pre-polymeric composition.
- the measurements can be used to determine a variety of properties of the composition within the article, including thickness, integrity, orientation, and continuity. Similarly, a map can be obtained indicating the location of the composition. For example, in the case of structural adhesives forming a bond line to join two parts together, the properties of the bond line can be examined.
- Either the electrical or the magnetic properties of the microparticles can be used to make the measurement to determine the volume of the composition containing the microparticles.
- magnetic permeability can be measured. Magnetic permeability is a function of the number of ferromagnetic microparticles and the amount of metal coating on the microparticles. Magnetic permeability is defined as the ratio of the total magnetic flux density in a sample to the externally applied magnetic field. Magnetic permeability is a measure of how effective the material is in capturing available magnetic flux, or how magnetic flux due to a coil is multiplied inside a material within that coil. This multiplication directly influences the inductance or inductive reactance associated with the coil.
- the magnetic permeability can be measured using an a.c. magnetic hysteresis looper, e.g., a Gerard Electronic MH looperTM operating at a frequency of 10 kHz and an applied field strength of 10 gauss.
- the magnetic field is applied with a frequency in the range of from 1kHz to 10 kHz.
- the inductance can be measured using a solenoid coil containing the sample to be measured connected to a resistance/capacitance/inductance (RCL) meter configured to measure inductance.
- RCL resistance/capacitance/inductance
- the coil and the RCL meter should be optimized for the given measurement parameters. For example, for a 0.9 to 0.5 milliHenry solenoid coil, it is desirable for the inductance due to the sample to be read at least to the nearest 0.01 microHenry or better.
- inductive reactance can be measured using an eddy current instrument (e.g., a Nortec 19e" EddyscopeTM, an impedance plane eddy current instrument, equipped with a Nortec OD/ 100kHz/A/ 0.682" probe) to measure the quantity of microparticles (and thus the quantity of pre-polymeric or polymeric composition) within a given volume.
- an eddy current instrument e.g., a Nortec 19e" EddyscopeTM, an impedance plane eddy current instrument, equipped with a Nortec OD/ 100kHz/A/ 0.682" probe
- the vertical response of the EddyscopeTM is proportional to the inductive reactance; this response is hereinafter referred to as the inductive reactance (X L ).
- the inductive reactance i.e., the EddyscopeTM response, is approximately proportional to the loading of the microparticles and coating thickness on the individual microparticles.
- Another way of performing the measurement to determine the volume of the composition containing the microparticles is by measuring the dielectric properties of the microparticles. Electrically conductive coatings on the microparticles increase the dielectric constant, which is related to microparticle loading. This can be determined, for example, by measuring the capacitance of a parallel plate capacitor containing the microparticles.
- An advantage of the dielectric measurement approach over the magnetic permeability approach in certain applications is that the magnetic response is related to the amount of magnetic material coated onto the microparticles, while the dielectric constant is approximately independent of coating thickness. Therefore, much thinner electrically conductive coatings can be used when the dielectric measurements are used. Other aspects of the electromagnetic properties can be exploited to perform the measurements.
- certain metals can scatter x-rays sufficiently, so x-ray transmission measurements can be used to quantify the amount of metal- coated microparticles present within a material.
- coatings can be selected to minimize interference with x-ray transmission so that articles can be examined with x-rays with minimal interference by the coated microparticles.
- microwave or inductive heating methods can be used to heat the microparticles, after which the associated infrared emissions can be measured to quantify the amount of microparticles (and thus the amount of polymeric or pre- polymeric composition).
- Another application of the invention involves the use of the microparticles in determining or measuring the level of stress in polymers or pre-polymeric compositions.
- the magnetic properties of the particular microparticles present in the compositions are measured and correlated to the level of stress in the composition containing the microparticles.
- Such polymers or polymer compositions containing magnetic microparticles may generally be made as described hereinbefore.
- the correlation is obtained by measuring the magnetic property or characteristic of samples whose stress condition is known or for which the stress condition can be correlated with other useful parameters.
- the level of stress in the polymeric material can be used, for example, to determine the degree of cure of an adhesive or other thermosettable or crosslinkable polymeric material, the level of external forces applied to a polymer composition or substrate, the amount or quality of adhesion of an adhesive to a substrate, and thermal history of the polymer from heating and cooling cycles.
- a particularly useful magnetic property of the magnetic particles for measuring stress levels in polymeric compositions is the magnetic permeability.
- the magnetic permeability of the microparticle changes with stress applied to the microparticle.
- the change in the magnetic permeability of a magnetic material with an applied stress is commonly referred to as “inverse magnetostriction” and is also known as the “magnetomechanical” effect.
- the measured changes in the magnetic permeability of the microparticles can then be correlated with the amount or level of stress within the composition containing the microparticles. Increases or decreases in the stress in the composition are measured as changes in the magnetic permeability of the magnetic particles.
- the amount of stress in the polymer is directly proportional to the amount of change in the magnetic permeability of the particles measured. Applicants have discovered that these effects are generally much larger for coated magnetic particles than for particles entirely composed of magnetic material.
- a parameter is measured that is directly related to the magnetic permeability of the magnetic particles.
- Such parameters can be the inductance of a solenoid coil or the inductive reactance of an eddy current probe as described above, with both measurements taken in the vicinity of the sample.
- the sample can be contained within the solenoid coil.
- the stress level of a particular composition is calibrated to these parameters for stressed versus unstressed polymer samples.
- the change in the magnetic permeability of the magnetic particles for measuring the stress level in polymers is monitored using a coil connected to an RCL meter.
- the coil and the RCL meter should be optimized for the given measurement parameters.
- the measurement of the magnetic characteristic of a particular magnetic particle is performed over time in which the external temperature may change, then desirably, the measurement is corrected for the effect of temperature variations on the performance of the particular instrument used to measure the magnetic characteristic.
- the temperature variations are typically due to the surrounding environment in which the measurements are being made.
- the temperature corrections are performed by subjecting the probe or instrument to different temperatures and recording the performance of the instrument at that temperature. The correlation of temperature to performance is then used to correct the measurement of the samples being characterized.
- a solenoid coil can be placed in an oven set to various temperatures and its inductance determined at each temperature.
- the temperature-corrected inductance (where the contribution to the inductance from the empty solenoid coil is eliminated) is determined by measuring the temperature of the solenoid coil, determining the inductance of the empty solenoid coil associated with that temperature, and then subtracting that inductance from the inductance of the solenoid coil (measured at the same temperature) containing the sample. This can be done automatically by using a computer which can also be used to carry out real time averaging of the resulting data.
- One particularly useful application of measuring the stress level in polymeric compositions or polymers containing magnetic particles is for determining the degree of cure of an adhesive composition. As the adhesive cures, the internal stress levels of the adhesive usually increase.
- the progress of cure of a polymer or an adhesive can be followed in real time by monitoring inductance.
- the stabilization of the inductance indicates that the crosslinking of the adhesive has progressed substantially to the degree possible at a given temperature.
- an independent measurement of the degree of cure at that time can be performed to create a standard curve.
- Degree of cure of the adhesive composition could be determined for example, by comparison of the heats of reaction of uncured, partially cured and substantially cured polymeric material.
- this measurement can be performed to detect problems related to incomplete cure of the adhesive. Additionally, in an adhesive dispensing system, this method can be used to detect undesired or premature cure of the polymer.
- the methods of the invention can also be used to determine the cure of an adhesive which is subjected to induction heating or some other process meant to accelerate the cure rate of the adhesive. Accordingly, a useful paramenter to which inductance changes can be related is the change in bond strength of an adhesive realized in, for example, an overlap shear bond mode with an adhesive whose cure is being monitored. Such a parameter is relevant to the development of handling strength in structural parts.
- Another useful application of measuring the level of stress in polymers or polymeric compositions is to determine the magnitude of external forces applied to the polymer or polymeric composition, for example, compression or tensile forces.
- the external forces can be static or dynamic and can be mechanical, vibrational, or acoustical.
- the external forces applied on a particular sample containing magnetic microparticles can be measured by correlating the indicated stress level, monitored by a suitable parameter, to a standard curve for that particular sample system. In this way, the method of the invention can be used to predict the performance of adhesives subjected to such external forces.
- Another application of the methods of the invention involves the use of the microparticles in acoustic attenuating materials.
- attenuating materials are described in detail in U.S. Patent No. 5,504,281, incorporated by reference herein.
- Such materials use glass bubbles at a high volume loading in a starved epoxy matrix.
- Such material is efficient in attenuating incident sound either by absorption or by reflection.
- Such materials can also be improved by the addition of magnetic particles to assist in the characterization of the acoustic environment.
- an inductive sensor head placed in the vicinity of the acoustic attenuating structure could be used to determine the acoustically generated stress distributions, thus enabling adjustment for this environment to be carried out.
- Another application of measuring the stress levels in polymers or polymeric compositions is to determine the amount of or quality of adhesion of an adhesive material to substrate.
- the magnetic characteristics of adhesive systems containing magnetic particles could be correlated with a particular adhesive bonding characteristic.
- the determination of adhesion will vary depending on the object of determination. For example, if the object is the determination of the bond strength of an adhesive to a substrate, a correlation can be established between inductance and bond strength. This correlation can be made because in many instances, bond strength is a function of crosslink density or degree of cure, which are both influenced by for example, reactants and time and temperature of cure.
- the object is the determination of the quality of adhesion of an adhesive to a substrate, which can be related to failure mode in the event an adhesion test is performed
- changes in the inductance of the sample can indicate the intimacy of eontact between the adhesive material and the substrate.
- Yet another application for the methods of the invention is to determine resultant stresses as a result of heating and cooling the polymer. This application can also be used to indicate performance characteristics of the polymer. For example, different quenching or cooling rates will produce different levels of stress in a polymeric system.
- the methods of the invention can be used to monitor the thermal history of polymeric materials.
- Another application involves the use of microparticles in nondestructive testing to determine the direction of the stress in a polymer or polymeric composition.
- the direction of the stress in a polymer composition can influence its physical properties, for example, strength and resiliency.
- strength and resiliency For example, when fiber shaped particles having a particular magnetic coating are dispersed throughout the polymer in a known orientation, stress applied parallel to the fiber axis produces a different and unique change in magnetic permeability than when a stress is applied perpendicular to the fiber axis.
- the direction of the stress in the substrate may be correlated to a particular change in the measured magnetic characteristic. This correlation can then be used to determine the direction of stress in other substrates that contain the particular coated fiber shaped particle.
- This example demonstrates that glass bubbles can be coated with a very thin magnetic stainless steel coating.
- K37 ScotchliteTM glass bubbles (sold by Minnesota Mining and Manufacturing Company, Saint Paul, MN) were sputter coated with 304 stainless steel according to the procedure described generally in U.S. Patent No. 4,618,525, incorporated herein by reference.
- a 304 stainless steel target was dc magnetron sputtered for 7.0 hours at 8.0 kW at an argon sputtering gas pressure of 5 millitorr onto 415 grams of K37 ScotchliteTM glass bubbles.
- the 304 stainless steel sputter target was non-magnetic austenitic face centered cubic, but deposits as the magnetic ferritic body centered cubic form.
- the resulting stainless steel coated bubbles had an iron content of 7.86% by weight (determined by inductively coupled plasma emission spectroscopy), corresponding to 11.2% by weight stainless steel (which is 70% by weight iron).
- a typical 304 stainless steel composition is 70% iron, 19% chromium, 10% nickel, and 1%) manganese.
- the surface area of the glass bubbles was determined by the B.E.T. method to be 0.55 square meters per gram.
- the density of the coated bubbles was measured using a Beckman Model 930 air comparison pycnometer. The density of the uncoated bubbles was 0.36 g/cc, and that of the coated bubbles was 0.41 g/cc.
- the metal coating thickness can be calculated from the relevant relationship described in U.S. Patent No. 5,409,968. In this case, the coating thickness was determined to be 29 nm.
- DevconTM 5-minute epoxy (ITW DevconTM, Danvers, MA) was used to prepare samples with various volume loadings of coated bubbles. This mixture was placed in 80 mm long PyrexTM glass tubes with 13.2 mm inner diameter and a 16.0 mm outer diameter.
- the inductive reactance was then measured using a Nortec EddyscopeTM.
- the rotation (“Rot” knob on the instrument) was used to calibrate the EddyscopeTM so that displacement along the y-axis provided a measure of inductive reactance.
- Inductive reactance in unsealed units was read from the EddyscopeTM display.
- Example 2 Procedures similar to that in Example 1 were carried out to make stainless steel coated glass bubbles with coating thicknesses of 59 and 86 nanometers. The density for each of the coated bubble samples was 0.44 and 0.49 g/cc, respectively. In addition, glass bubbles with a 29 nm thick stainless steel coating prepared as in Example 1 were used.
- the EddyscopeTM parameters were set as in Example 2 except that the gain was 70.0 dB.
- Test samples in DevconTM 5-minute epoxy were prepared at 10% volume loading for each of the three samples of coated bubbles.
- the inductive reactance was measured and is plotted as a function of the stainless steel coating thickness in Figure 2. The inductive reactance increases monotonically with stainless steel thickness.
- Example 4 In this example, the use of acicular particles is demonstrated.
- Milled glass fibers (Type 731 DD 1/16 inch milled glass fibers) were obtained from Owens/Corning Corporation (Toledo, OH). They had an aspect ratio range of approximately 1 to 40, with a fiber diameter of 15.8 microns. Stainless steel was deposited onto 1570 grams of these fibers for 20 hours at 8.0 kW in the manner previously described in Example 1. The weight percent iron was determined to be 6.2%, corresponding to 8.9% by weight stainless steel. The surface area of the uncoated fibers was 0.10 square meters per gram.
- the stainless steel coated milled glass fibers were dispersed in DevconTM 5- minute epoxy at a volume loading of 10%.
- the mixture was placed in glass tubes, as described in Example 2.
- the EddyscopeTM was set to a gain of 68.0 dB with Probe Drive on High.
- the inductive reactance was determined to be 8.9.
- Example 5 In this example, the use of a magnetic cobalt coating is demonstrated.
- Milled glass fibers were sputter coated with cobalt, as described in Example 1 , using a MAK 3 inch Magnetron Sputtering Source (US Thin Film Products Inc., Campbell, CA). The weight percent cobalt was determined to be 5.6%, corresponding to a coating thickness on the fibers of 67 nm. The cobalt coated milled glass fibers were dispersed at 10% by volume in
- Example 4 DevconTM 5 minute epoxy and loaded into a glass tube as described in Example 4.
- the EddyscopeTM was set to the same conditions as Example 4 except that the gain was raised to a value of 80.0 dB.
- the inductive reactance was determined to be 9.6.
- Example 7 The stainless steel-coated mica flakes were dispersed at a volume loading of 10% into RTV 615TM, a silicone rubber available from Dow Corning Corporation, Midland, MI. This was loaded into a glass tube as described in Example 3.
- the EddyscopeTM was set to the same conditions as Example 4 except that the gain was set to a value of 60.0.
- the inductive reactance was determined to be 8.4.
- This example illustrates the relationship between the measured magnetic permeability and the stainless steel coating thickness on the glass bubbles.
- the three stainless steel-coated bubble samples described in Example 3 were combined with DevconTM 5 minute epoxy at a volume loading of 10%.
- the material was used to fill tubes (straws) with a 5 mm internal diameter to a depth of
- the permeability was determined from a hysteresis loop obtained using a
- Gerard Electronic MH looper operating at a frequency of 10 kHz and an applied field strength of 10 gauss.
- the permeability was calculated from the maximum applied field in gauss and the maximum magnetization in emu/cc.
- a BH looper could also be used.
- the permeability is plotted versus stainless steel coating thickness in
- Example 8 This example demonstrates that the inductive reactance for coated particles is directly related to their magnetic permeability.
- Magnetic permeability is a fundamental magnetic property of the coated microparticles incorporated into an adhesive. Magnetic permeability is related to the EddyscopeTM response, which is the inductive reactance.
- the magnetic permeability measurements of Example 7 are plotted in Figure 4 against the inductive reactance measurements of Example 3 using the same coating thicknesses of stainless steel on glass bubbles. The inductive reactance is monotonic, and almost proportional to the permeability.
- Example 9
- This example demonstrates the use of the magnetic coated microparticles within an adhesive for non-destructive testing. This could be used as a form of non-destructive testing to determine the continuity of the adhesive bondline.
- DevconTM 5 minute epoxy was used to make an adhesive having a 26% volume loading of glass bubbles with a 29 nm thick stainless steel coating prepared as in Example 1. About 1% by volume of 60-100 micron diameter glass beads were added as spacers. A bead of this material was laid onto a strip of aluminum measuring 0.61 mm thick, 19 mm wide, and 31 cm long. In the middle, the adhesive was removed from a span of about 3 cm. An identical piece of aluminum was pressed onto the adhesive on the first piece to make an aluminum-epoxy- aluminum sandwich structure. Adhesive which exuded from both edges of the structure was removed after the adhesive had cured.
- a Nortec SPO-5781TM 1 kHz-50 kHz edge probe was used to scan the structure.
- the EddyscopeTM was set at 5 kl Iz with 0 degrees rotation and probe drive Hi.
- the scan is presented as a screen print in Figure 5. The gap in the adhesive between the two aluminum pieces is clearly shown.
- Example 10 This example demonstrates the use of a simple solenoid coil in place of an eddy current instrument, such as an EddyscopeTM, to determine loading of coated microbubbles.
- a solenoid coil was prepared by winding size 36 (0.127 mm diameter) insulated copper wire onto a 19.0 mm o.d. glass tube.
- the coil had 333 turns in four layers over a length of 3.0 cm.
- the two leads from the coil were connected to a Tenmark 72-370TM digital LCR meter.
- This LCR meter was a hand-held device capable of measuring inductance, capacitance, or resistance when attached to an appropriate sensing device.
- Eighty mm long, 16.0 mm outer diameter glass tubes containing DevconTM epoxy with various loadings of glass bubbles provided with 29 nm thick stainless steel coatings were inserted into a tube (centered in the coil region), which had a 16.5 mm inner diameter.
- the inductance was read off the LCR meter and is plotted versus volume loading in Figure 6.
- the approximate linear relationship between inductance and loading demonstrates the fundamental relationship between the two. This also shows that equipment other than an eddy current instrument can be used in sensing loadings in the adhesives containing the microparticles.
- a two-plate capacitor was made for detecting the capacitance of an adhesive material. Two pieces of adhesive-backed copper foil were cut to form rectangles 2.0 cm wide x 3.0 cm long. These were affixed to the outside of a glass tube of the same dimensions as the larger glass tube in Example 10. They were affixed opposing one another so as to form a curved-plate rather than parallel-plate capacitor. Electrical leads from each plate were connected to the same LCR meter described in Example 10. This sensing apparatus was loaded with various samples of adhesives containing coated microparticles as described in Example 10.
- the capacitance was read off the LCR meter and is plotted versus loading of the coated microparticles in the adhesive in Figure 7. The approximate linear relationship between the two demonstrates that measurement of capacitance provides another means of determining concentration.
- This example demonstrates the ability of an object made with a material incorporating microparticles to be mapped using an EddyscopeTM. It also demonstrates the use of a thermoplastic, rather than thermoset, resin.
- a rectangular plastic tray was obtained from Minnesota Mining and Manufacturing Company, St. Paul, MN. It is identified as Thin PQFPTM 132 21002-203. It is 32.3 cm wide by 0.85 cm thick. It contains 24% by volume stainless steel-coated milled glass fibers dispersed in Mindel SI 000, a thermoplastic resin obtained from Amoco Chemical Company, Chicago, IL.
- a Nortec S-300TM Hz-10kHz/.62 surface probe was oriented vertically 1 mm above the surface of the tray in such a manner as to allow the tray to be scanned under it.
- the EddyscopeTM was set with a frequency of 1.0 kHz, a gain of 90 dB, a probe drive "Hi,” and rotation 18 degrees. The tray was manually scanned under the probe with inductive reactance versus time being recorded.
- the scan ( Figure 8) shows a map of the presence of high spots and voids in the tray.
- a physical map of the tray from the top side is also given here for comparison in Figure 9.
- the scan was made in a straight line from one end of the tray to the other on the second row from the top, as indicated by the horizontal arrow.
- This example demonstrates the ability of a material incorporating microparticles to be mapped using capacitance, rather than an EddyscopeTM.
- a parallel-plate capacitor was set up for the purpose of scanning the tray of
- Example 12 The top electrode was a rectangle measuring 1.4 cm by 1.0 cm and the bottom electrode measured 15 cm by 15 cm. The spacing between the electrodes was 0.8 cm. The capacitance was measured using the meter described in Example 10. The tray was moved through the sensing capacitor, with the capacitance recorded at 0.5 cm increments. The capacitance map is shown in Figure 10 along with a schematic cross section of the tray. The voids, peaks, and valleys on the surface of the tray are clearly indicated in this scan (within the resolution of the top electrode).
- Epon 828 DGEBA 80 1.17 68.38 Heloxy 107 epoxy diluent 20 1.09 18.35 TS-720 fumed silica 2 1.8 1.1 1 0.25-mm glass beads 3 2.5 1.20 GP-71 fused silica 20 2.2 9.09 29 nm SS-coated glass bubbles 21.7 0.41 52.93 Totals 146.7 151.05
- Polyamidoamine 40 1.0 40.00
- Epon 828TM is a diglycidyl ether of bisphenol A available from Shell Chemical Company, Houston, TX. Heloxy 107 is a diglycidyl ether of cyclohexane available from Shell Chemical Company, Houston, TX .
- TS-720 is a hydrophobic fumed silica available from Cabot Corporation, Aurora, IL.
- the glass beads have a nominal diameter of 0.01 inches, available from Cataphote, Inc., Jackson, MS.
- GP-71TM is an amorphous silicon dioxide available from Harbison- Walker Corporation, Pittsburgh, PA.
- the glass bubbles are hollow glass microspheres available from Minnesota Mining and Manufacturing Company, St. Paul, MN.
- the polyamidoamine is an amine-terminated polyamide.
- H221 is 4,7, 10-trioxatridecane 1 , 3-diamine available from BASF, Parsippany, NJ.
- AncamineTM K54 is 2, 4, 6-trimethyaminomethyl phenol available from Air Products and Chemicals, Inc., Allentown, PA.
- ATBN 1300x16 is acrylonitrile- terminated butadiene liquid rubber available from B. F. Goodrich Company, Cleveland, OH.
- the proper mix ratio of this adhesive by weight is 146.7/87 or 1.69 B:A, obtained by dividing the formula weight of Part B by the formula weight of Part A. (By volume, by a similar procedure, the volume mix ratio is 151.05/75.54 or 2.0 B:A).
- a B:A mix ratio of 1.86: 1.00 represents a plus 10% off-ratio while 1.52: 1.00 represents a minus 10% off-ratio.
- the response of the EddyscopeTM was somewhat more consistent when the mixing elements were removed from the static mix nozzles because filling of the nozzles is more uniform without the mixing elements.
- a steady-state response could be achieved.
- the nozzle is moved back and forth in the probe.
- the EddyscopeTM responses corresponding to adhesives mixed under the proper (control) mix ratio, -10% off-ratio, and +10% off-ratio are readily differentiated from each other.
- the measured responses can provide a process window within which mix ratio can be established and maintained using an adhesive containing coated glass bubbles.
- This example demonstrates the substitution of varying amounts of coated glass bubbles for already present plain glass bubbles.
- a two component adhesive (16-1) was made using uncoated glass bubbles, and corresponding versions were made (16-2 through 16-6) by substituting for some or all of the plain glass bubbles in the B adhesive component with stainless steel coated glass bubbles having a 29 nm stainless steel coating.
- the B adhesive component contained a 0.35 volume fraction of glass bubbles.
- Part A is as given below and is used in the given mix ratio with each of the above Part Bs to form a 2:1 mixture by volume.
- the nature of the ingredients of the A and B compositions are described further in Example 14.
- the volume fraction of total glass bubbles was kept as close as possible to a constant value for all B components using calculations involving the 0.37 g/cc density of the uncoated glass bubbles and the 0.41 g/cc density of the stainless steel coated glass bubbles.
- the parts of all bubble components were rounded to the nearest 0.1 g.
- samples of the B components 16-1 through 16-6 were mixed under vacuum with the appropriate amount of the A component and deposited into flat-bottomed plastic weighing dishes.
- the component mixtures were allowed to cure at room temperature into a solid mass about 2.5 inches in diameter and at least 0.5 inches thick. After cure, the dish was peeled off of each hardened adhesive to present a flat surface which was interrogated using a flat surface probe, Nortec #954769, S/lkHz-50kHz/0.31.
- the EddyscopeTM was set at a frequency of 50 kHz, a gain of 67.0, and a rotation of 64 degrees.
- This example demonstrates the direct detection of compressive stress on a polymer.
- a 0.6 milliHenry solenoid coil was prepared by winding size 36 (0.127 mm diameter) insulated copper wire onto a 19.1 mm o.d. glass tube.
- the coil had a total of 200 turns in two layers over a length of 16.1 mm.
- the two leads from the coil were connected to a FlukeTM PM6306 RCL meter configured to read inductance.
- the sensitivity was such that the inductance could be read to the nearest 0.01 microHenry.
- An RCL meter is a device which directly measures inductance. The frequency was set at 20 kHz and the potential was set on "high.” The measured inductance for the empty coil was 607.77 microHenry.
- K37 ScotchliteTM glass bubbles (sold by Minnesota Mining and Manufacturing Company, Saint Paul, MN) were sputter coated with stainless steel in a manner similar to that described in Example 1.
- the thickness of the coating on the microbubbles was determined to be 23 nm.
- the stainless steel coated bubbles were mixed into DevconTM 5-minute epoxy (ITW DevconTM, Danvers, MA) at a level of 13% by volume. Additionally, uncoated glass bubbles (ScotchliteTM K37) were added to the epoxy mixture at a level of 27% by volume.
- a cylinder of coated particle loaded epoxy composition was prepared by injecting the epoxy into a plastic tube having a length of about 72 mm and an inner diameter of about 16 mm, and then allowing the epoxy composition to cure. After the epoxy composition was cured, the plastic tube was removed.
- the hard epoxy polymer cylinder had a diameter of 15.9 mm and a length of 58 mm. The epoxy sample or cylinder was aligned vertically and supported by a plastic stand.
- the solenoid coil was placed over the epoxy sample such that the sample was contained within the coil.
- the initial inductance of the cylinder was measured and was 615.52 microHenry.
- Increasing amounts of force were applied to the sample cylinder to induce compressive stress. This was done as follows. Weights were added to a plastic platform that was attached to a wood rod. The distance between the metal weights and the top of the sample was 30 cm.
- the platform apparatus was slidably attached to a wall such that the platform with attached tube could move vertically with minimal friction.
- the wood rod was aligned with the vertical axis of the epoxy cylinder. The end of the rod contacted a glass sphere contained on a ceramic washer sitting on top of the sample cylinder.
- the applied weights were 1257, 2512, 3732, and 6145 g and the inductance (L s (stressed)) was measured at each applied weight.
- the initial inductance (L u (unstressed)) was subtracted from the inductance (L s ) reading at each applied weight and the applied weights were converted to compressive stress (static).
- Figure 13 shows the resulting plot of the change in inductance of the sample due to the applied load versus the applied stress.
- Figure 13 shows that as compressive strength is increased, the inductance increases monotonically. This demonstrates that the method of the invention can be used to measure stress applied to a polymer or other material.
- the epoxy test cylinder was aligned vertically and affixed at the top end to a dielectric support using a fibrous tape.
- An attachment loop was fashioned from fibrous tape and the loop was attached to the bottom end of the epoxy cylinder.
- Example 16 The solenoid coil of Example 16 was placed over the epoxy cylinder such that the cylinder was contained within the solenoid coil. A plastic bucket was then hooked onto the tape loop and water was added to provide the different test weights. The different test weights were 514, 1006, 1509, 1977, 2501, and 351 1 grams. The weights were converted to an applied tensile stress (kPa). The empty coil inductance (L e ) was 606.74 microHenry and the unstressed inductance (L u ) of the epoxy cylinder was 615.05 microHenry. The change in inductance normalized to permeability was calculated using the following formula: (L s -L U )/(L U -L e ). The change in inductance normalized by permeability was plotted versus the applied stress. The results of the tensile test above and of Example 16 are shown in Figure 14.
- Example 16 The compressive stress test described in Example 16 was used to evaluate other magnetic particles, except that the applied weight was 3700 g.
- the epoxy cylinder samples of Examples 18-23 and comparative samples Cl-Cl 1 were prepared using methods similar to those described in Example 16.
- the coated particles of Examples 18-23 were made using methods similar to those described in Example 1.
- SS/K37 is stainless steel coated glass ScotchliteTM K37 microbubbles.
- Examples 18 and 19 had an average stainless steel coating thickness of 23 nm.
- Example 20 had an average stainless steel coating thickness of 59 nm.
- Example 21 had an average stainless steel coating thickness of 86 nm.
- Ni/C15 bubbles is nickel coated glass ScotchliteTM C 15/250 glass microbubbles having a coating thickness of 10 nm. (Uncoated glass bubbles available from Minnesota Mining and Manufacturing Company, St. Paul, MN).
- the glass fiber used in Example 23 and comparative examples Cl, C2, and C3 is 731 -ED 1/32 inch Milled Glass Fibers, commercially available from Owens Corning, Toledo, OH.
- Ni/GF is nickel coated glass fiber having a coating thickness of 1 1 nm.
- Co/GF is cobalt coated glass fiber described in Example 5.
- Super invar/GF is super invar coated glass fibers having a coating thickness of 4 nm.
- the super invar composition is Fe(64)Ni(31)Co(5).
- PermalloyTM/GF is permalloy alloy coated glass fibers having a coating thickness of 10 nm.
- the permalloy composition is typically Ni(80)Fe(20).
- Steward Ferrite is nickel zinc copper ferrite powder (product number
- Iron Powder is FCC food grade reduced iron powder, available from J.T. Baker Chemical Co., Phillipsburg, NJ.
- Nickel Powder is nickel powder (200 mesh) item number NX300, available from Matheson Coleman & Bell, Norwood, OH.
- Magnetite is ferrosoferric oxide, black powder, item number CB387, available from Matheson Coleman & Bell, Norwood, OH.
- Ni:Fe 80:20 is nickel(80 wt%) iron (20 wl%) powder ( 100 mesh), item number 85501, available from Alfa Aesar, Johnson Mathey, Ward Hill, MA.
- Ni:Fe 50:50 is nickel(50 wt %) iron (50 wt%) powder, item number 88380, available from Alfa Aesar, Johnson Mathey, Ward Hill, MA.
- Lignosite FML is an aqueous dispersion of magnetite stabilized with lignosulfonate available from Georgia Pacific, Atlanta GA. The water was removed by spray drying to form a solid powder.
- L u the inductance of the solenoid coil containing the sample containing the particular magnetic particles with no applied load.
- L e the inductance of the solenoid coil containing no sample.
- L s the inductance of the solenoid coil containing the sample containing the particular magnetic particles with an applied load of 3700 g.
- L u -L e a measure of the amount of inductance due the presence of the magnetic particles.
- L s -L u a measure of the change in inductance due to the applied load.
- Change in Inductance Normalized to Loading is (L s -L u )/loading fraction and is a measure of the change in magnetic property normalized to the volume loading of the magnetic particles present.
- Examples 19-21 show that as the thickness of the metal coating increases, the change in inductance normalized to loading increases.
- the data in Table 1 also demonstrate that both signs of inverse magnetostriction can be seen.
- the data also show that both spherical and acicular coated particles show the inverse magnetostriction effect.
- the data also demonstrate that the relative inverse magnetostrictive effect for coated particles, as measured by the change in inductance normalized to permeability, is larger than the effect for solid particles.
- Examples 24-27 were prepared using DevconTM 5-minute epoxy as described in Example 16.
- Examples 24-27 contained coated particles that were prepared as described in Example 1.
- the coated particles of Examples 24-27 had metal coating thicknesses of 23 and 10 nm, respectively.
- the volume loading of the coated particles in each sample is described in Table 2 below.
- Examples 24-27 were subjected to a torsional stress.
- the resulting stress produced a change in inductance due to the inverse magnetostrictive effect.
- test samples prepared as described in Examples 16 and 17 were oriented horizontally. On each end of each sample was bonded a wood square. The wood square at one end was inserted into a square hole in a fixed wooden block to prevent the cylinder from rotating. The wood square at the other end was inserted into a square hole in a wood level arm 30 cm in length, which was also oriented horizontally. Weight could be added to the end of the arm. The added weight exerts a torque on the cylinder, creating a torsional stress. Weights of 160 and 325 g were added, creating torques of approximately 0.47 and 0.96 N-m. The solenoid coil and RCL meter described in Example 16 were used.
- the degree of cure of a polymer was monitored using the measurement of inductance.
- a cylinder of epoxy containing stainless steel microbubbles was prepared as described in Example 16 except that the sample was prepared in a glass tube (15.9 mm o.d., 13.6 mm i.d. ) which fit inside the glass tube supporting the solenoid coil (0.6 milliHenry).
- the stainless steel coated glass bubbles were prepared as described in Example 1 and they had a coating thickness of 23 nm. After mixing of the epoxy and the coated and uncoated glass bubbles, the epoxy composition was allowed to cool to room temperature and then the sample was placed into the solenoid coil. The inductance of the sample was monitored over a period of about 25 hours.
- a cylindrical epoxy sample was prepared as described above in Example 16.
- DevconTM 5 minute epoxy was used to make a sample having a 27 percent volume loading of ScotchliteTM K37 glass bubbles and 13 volume percent of the glass bubbles having a stainless steel coating 23 nm thick and prepared as described in Example 16.
- the solenoid coil used to measure inductance was similar to the solenoid coil described in Example 16 except that a total of 1060 turns (4 layers) were used over a length of 42 mm, giving an empty coil inductance (L c )of about 9 milliHenry.
- the fully cured sample was heated in an oven at a known temperature, placed in an insulated cell fitted with a thermocouple so as to accurately determine the equilibrium temperature of the sample, then quickly inserted into the room temperature solenoid coil, where the inductance was recorded within a few seconds.
- the sample was then withdrawn from the solenoid coil and then heated to the next temperature.
- the inductance measurements were taken quickly so as to minimize the transfer of heat from the sample to the solenoid coil.
- the inductance measurement of the sample was repeated at each sample temperature.
- the solenoid coil measurements were not compensated for environmental temperature changes.
- the plot of the change in inductance versus sample temperature is shown in Figure 16.
- the change in inductance was calculated using the following expression: L ⁇ -L ⁇ c .
- Example 28 The trend of the data for stainless steel coated glass bubbles shows that inductance increases with increasing sample temperature.
- the trend of the data appears to be related to inverse magnetostriction.
- the trend of the data is consistent with increasing relaxation of the epoxy matrix as temperature increases.
- the increase in temperature softens the polymer and relaxes the stress in the polymer system.
- the increased inductance associated with less stress in the sample is consistent with the results of Example 28.
- the inductance of the sample is also highest when the sample has the lowest level of stress (before the indicated full cure).
- Example 29 Stainless steel coated glass microbubbles as described above in Example 29 and present in the same amount by volume in Example 29 were used in the silicone rubber matrix.
- the silicone rubber matrix is softer and more rubbery after curing, when compared to the epoxy polymer used above.
- the silicone rubber sample was expected to cure with much less stress, and so the temperature dependence of the inductance was expected to be much less that that of the epoxy sample above.
- the observed temperature dependence of the inductance was only about 20% of that observed for the epoxy polymer measured above. Part of the observed dependence on temperature of the inductance for the silicone rubber sample may be due to heat transfer from the sample to the solenoid coil.
- the apparatus consisted of a voice coil as a component in a subwoofer (12-inch dual voice coil subwoofer, cat. No. 40-1350A, from Radio Shack, Fort Worth, TX) with the magnet housing firmly attached to a massive cement building block. Portions of the subwoofer cone were removed with enough of the cone left to provide mechanical support for the mechanically floating voice coil.
- a wood rod was partially inserted into the bore of the voice coil and adhesively bonded thereto. The rod had a length of approximately 61 cm and a diameter of 1.6 cm. The rod was then adhesively bonded at the opposite end to one end of a test sample.
- test sample was then adhesively bonded to a second massive cement building block. Both the test rod and the test sample were oriented horizontally and together formed a continuous rod, which was laterally constrained.
- the test sample was firmly affixed to the EddyscopeTM probe with an adhesive so as to prevent the influence of perpendicular forces on the EddyscopeTM output.
- a metal spring having a known force constant was used to measure the amplitude of the applied oscillating stress.
- the spring was 6 cm in length and 1.9 cm in diameter with 9 turns and a force constant of 400 g/mm.
- the spring was inserted into a gap in the rod and mechanically affixed at both ends to the rod. The displacement of the spring was observed and recorded. This measurement was used to determine the maximum stress amplitude applied using Hooke's Law.
- the spring was removed from the apparatus and the rod was bonded directly to the sample when the oscillating triangular (non-sinusoidal) stress was directed to the voice coil. The removal of the spring was required so as to be able to fully resolve the triangular curve shape on the EddyscopeTM.
- the voice coil was driven by a stereo amplifier (Model STAV-3570, from Radio Shack).
- the input signal to the amplifier was provided by a signal generator (Wavetek Model 135 Lin Log Sweep Generator, San Diego CA).
- a Nortec 19e" EddyscopeTM (Stavely Instruments, Kennewick, WA) with the model OD probe was used to measure the sample response.
- the time axis of the EddyscopeTM was expanded to include detection of time periods of about O.001 seconds. This corresponds to frequencies up to 1000 Hz.
- the test sample was an epoxy cylinder containing 40% v/v stainless steel coated ScotchliteTM K37 glass bubbles in epoxy polymer prepared as described in Example 16. The glass bubbles had an average coating thickness of 23 nm.
- the epoxy sample was tested as follows. After the sample was secured in the apparatus as described above, a sine wave of known frequency was generated by the signal generator and input into the voice coil. The voice coil response was transmitted through the rod to the sample to produce an applied sinusoidally oscillating stress of known frequency on the sample. The maximum amplitude of the applied stress was 160 kPa and was determined by using the above described spring. The applied stress resulted in a sinusoidal response as measured with the EddyscopeTM. Frequencies of from 1 to 1000 hertz were examined.
- the EddyscopeTM outputs for several frequencies, 2, 60, 500, and 60 hertz, respectively, are shown in Figures 17-20.
- the results show that the inverse magnetostrictive response of a polymer system containing magnetic particles can follow high frequency (acoustic) input accurately.
- the polymer system was shown to be effective as a transducer to convert the frequency of a mechanical signal to a magnetic signal having the same frequency.
- Example 31 In this example, detection of the direction of stress in a polymer was demonstrated.
- Stainless steel coated milled glass fibers (FiberglasTM Milled Fibers 731 ED 1/32 inch, Owens Corning, Toledo, OH) were dispersed at 20% v/v into DevconTM 5 minute epoxy.
- the fibers were coated as described in Example 1 and had an average coating thickness of 22 nm.
- This mixture was injected into a plastic tube as described in Example 16.
- the plastic tube was then placed between two parallel barium ferrite ceramic bar magnets (parallel to the bars) and the epoxy was allowed to cure. After the epoxy had hardened, the plastic tube was removed, forming a cylindrically shaped epoxy sample. Since the magnetic field was perpendicular to the axis of the tube, the magnetic fibers were permanently aligned perpendicular to the axis of the sample. The fiber orientation was clearly visible under a low power microscope.
- a second epoxy cylinder was prepared as described above, except that the magnets were placed further apart so that the plastic tube containing the sample composition was placed between and perpendicular to the magnetic bars. This sample orientation caused the magnetic fibers to align parallel to the axis of the sample during sample curing resulting in the magnetic fibers being permanently aligned parallel to the axis of the sample.
- the primary direction of magnetization of the fibers was parallel to the fiber axis.
- the inductance increased.
- the stress was applied perpendicular to the fiber axis, the inductance decreased.
- the change in inductance indicated the direction of the particular applied stress relative to the fiber axis.
- the above glass tubes were treated with organosilane as follows.
- An octyl- silane solution was prepared by adding 3.96 grams of octyltrimethoxysilane and 0.99 grams of n-propylamine to 396 grams of acetone.
- An epoxy silane solution was prepared in the same manner except that 2.78 grams of gamma- glycidoxypropyltrimethoxysilane was used in place of the octyltrimethoxysilane.
- Each glass tube to be treated was added to the solution contained in a beaker and allowed to stand for 30-40 hours. Each tube was removed and then stored in a vacuum for at least 10 hours.
- Inverse magnetostrictive stainless steel coated ScotchliteTM K37 glass bubbles were prepared as described in Example 1 and were mixed at a volume loading of 40% into an epoxy formulation prepared at a weight ratio of 10.0 g of EponTM 828 and 5.66 g of a commercially available curing agent (AncamineTM AD, from Air Products and Chemicals, Inc., Allentown, PA). The resulting mixture was injected into the surface treated glass tubes described above. The cure of each epoxy adhesive was followed with a solenoid coil as in Example 28 above.
- Example 33 For the sample treated with epoxy-terminated silane (Example 33), the epoxy cylinder remained attached and the inductance gradually dropped analogously to the inductance in Example 28.
- This example demonstrates detection of stress in a thermoplastic polymer.
- Stainless steel coated glass microbubbles prepared as described in Example 1 and having a coating thickness of 23 nm were mixed with polystyrene resin pellets (StyronTM XL-8028, from The Dow Chemical Company, Midland, MI), at a volume loading of 20%.
- the mixture was heated to approximately 260 degrees centigrade and the bubbles were blended into the polystyrene resin.
- the hot liquid mixture was then pressed into a heated metal tube lined with a paper release liner. Upon cooling, the polystyrene cylinder sample was removed from the metal tube.
- the polystyrene sample was tested as described in Example 16.
- An applied compressive load of 4.2 kg resulted in a change in inductance normalized to permeability of +17 ppt.
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Priority Applications (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA002285471A CA2285471A1 (en) | 1997-04-04 | 1998-04-03 | Method for measuring stress levels in polymeric compositions |
| KR10-1999-7009037A KR100539203B1 (ko) | 1997-04-04 | 1998-04-03 | 중합체 조성물에서의 응력 레벨 측정 방법 |
| DE69812332T DE69812332T2 (de) | 1997-04-04 | 1998-04-03 | Verfahren zum messen von spannungsgraden in polymeren verbindungen |
| EP98914489A EP0972192B8 (en) | 1997-04-04 | 1998-04-03 | Method for measuring stress levels in polymeric compositions |
| AU68834/98A AU6883498A (en) | 1997-04-04 | 1998-04-03 | Method for measuring stress levels in polymeric compositions |
| JP54294698A JP4203618B2 (ja) | 1997-04-04 | 1998-04-03 | ポリマー組成物の応力レベルを測定するための方法 |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US08/832,652 US6004817A (en) | 1997-04-04 | 1997-04-04 | Method for measuring stress levels in polymeric compositions |
| US08/832,652 | 1997-04-04 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO1998045703A1 true WO1998045703A1 (en) | 1998-10-15 |
Family
ID=25262280
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US1998/006676 Ceased WO1998045703A1 (en) | 1997-04-04 | 1998-04-03 | Method for measuring stress levels in polymeric compositions |
Country Status (10)
| Country | Link |
|---|---|
| US (2) | US6004817A (https=) |
| EP (1) | EP0972192B8 (https=) |
| JP (1) | JP4203618B2 (https=) |
| KR (1) | KR100539203B1 (https=) |
| CN (1) | CN1145795C (https=) |
| AU (1) | AU6883498A (https=) |
| CA (1) | CA2285471A1 (https=) |
| DE (1) | DE69812332T2 (https=) |
| ES (1) | ES2192322T3 (https=) |
| WO (1) | WO1998045703A1 (https=) |
Cited By (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2003530463A (ja) * | 2000-04-06 | 2003-10-14 | スリーエム イノベイティブ プロパティズ カンパニー | 低マイクロ波損失の低密度誘電体 |
| EP2070688A2 (en) | 2007-12-13 | 2009-06-17 | The Boeing Company | Aircraft structures bonded with adhesive including magnetostrictive material |
| EP2749615A1 (en) * | 2012-12-31 | 2014-07-02 | The Boeing Company | Aircraft structures bonded with adhesive including magnetostrictive material |
| EP2310187B1 (en) * | 2008-07-09 | 2016-12-21 | The Boeing Company | Measurement of strain in an adhesively bonded joint including magnetostrictive material |
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Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP0064216A2 (de) * | 1981-04-29 | 1982-11-10 | Magyar Tudományos Akadémia Müszaki Fizikai Kutato Intézet | Messgerät und Messvorrichtung zur kontaktlosen Messung des mechanischen Spannungszustandes eines ferromagnetischen Blechs |
| GB2219405A (en) * | 1985-05-02 | 1989-12-06 | Aeroquip Corp | Ferrous debris detection system |
| SU1374912A1 (ru) * | 1986-02-11 | 1990-04-15 | V V Mikhajlov | Изmepиteльhый пpeoбpaзobateль mexahичeckиx beличиh |
| SU1597614A1 (ru) * | 1988-07-21 | 1990-10-07 | Тюменский индустриальный институт им.Ленинского комсомола | Способ определени внутренних механических напр жений в упругой среде |
| EP0449586A2 (en) * | 1990-03-26 | 1991-10-02 | Bridgestone Corporation | Apparatus for measuring stress of viscoelastic material |
Family Cites Families (16)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3897454A (en) * | 1968-10-08 | 1975-07-29 | Atlantic Richfield Co | Polyalkylene glycol polyalkylene polyamine dispersants for lubricant fluids |
| US3896671A (en) * | 1974-01-10 | 1975-07-29 | Mine Safety Appliances Co | Temperature compensated inductive liquid metal level indicator |
| US4131064A (en) * | 1977-07-15 | 1978-12-26 | Westinghouse Electric Corp. | Tagging particles which are easily detected by luminescent response, or magnetic pickup, or both |
| US4618525A (en) * | 1985-06-03 | 1986-10-21 | Minnesota Mining And Manufacturing Company | Coated glass microbubbles and article incorporating them |
| US4944185A (en) * | 1989-01-17 | 1990-07-31 | Westinghouse Electric Corp. | System and method for qualitatively and nondestructively inspecting adhesive joints and other materials |
| US5361030A (en) * | 1990-10-22 | 1994-11-01 | Horiba, Ltd. | Leak detector for electro-magnetic induction-type conductivity meter |
| US5334932A (en) * | 1991-02-22 | 1994-08-02 | Vickers Incorporated | Temperature compensated electrical sensor system for measuring ferrous particles in a fluid using a series resonant oscillator and microprocessor |
| US5528138A (en) * | 1991-09-24 | 1996-06-18 | The Boeing Company | Resonant inductive debris detecting apparatus |
| US5171908A (en) * | 1991-11-18 | 1992-12-15 | Mobil Oil Corporation | Synthetic polyolefin lubricant oil |
| US5293137A (en) * | 1992-05-26 | 1994-03-08 | Tavis Corporation | Digital transducer system including two reactive transducers forming resonant oscillator circuits |
| US5409968A (en) * | 1992-11-06 | 1995-04-25 | Minnesota Mining And Manufacturing Company | Controlled conductivity antistatic articles |
| US5854557A (en) * | 1993-04-16 | 1998-12-29 | Tiefnig; Eugen | Corrosion measurement system |
| US5453291A (en) * | 1993-05-25 | 1995-09-26 | Honda Giken Kogyo Kabushiki Kaisha | FRP member and method of detecting internal damage therein |
| US5504281A (en) * | 1994-01-21 | 1996-04-02 | Minnesota Mining And Manufacturing Company | Perforated acoustical attenuators |
| EP0666470B1 (en) * | 1994-01-26 | 2001-04-11 | Honda Giken Kogyo Kabushiki Kaisha | Stress measurement of magnetic materials, and FRP and adhesive members with such material for defect detection |
| US5522660A (en) * | 1994-12-14 | 1996-06-04 | Fsi International, Inc. | Apparatus for blending and controlling the concentration of a liquid chemical in a diluent liquid |
-
1997
- 1997-04-04 US US08/832,652 patent/US6004817A/en not_active Expired - Lifetime
-
1998
- 1998-04-03 KR KR10-1999-7009037A patent/KR100539203B1/ko not_active Expired - Fee Related
- 1998-04-03 ES ES98914489T patent/ES2192322T3/es not_active Expired - Lifetime
- 1998-04-03 AU AU68834/98A patent/AU6883498A/en not_active Abandoned
- 1998-04-03 CA CA002285471A patent/CA2285471A1/en not_active Abandoned
- 1998-04-03 CN CNB988039710A patent/CN1145795C/zh not_active Expired - Fee Related
- 1998-04-03 DE DE69812332T patent/DE69812332T2/de not_active Expired - Fee Related
- 1998-04-03 JP JP54294698A patent/JP4203618B2/ja not_active Expired - Fee Related
- 1998-04-03 WO PCT/US1998/006676 patent/WO1998045703A1/en not_active Ceased
- 1998-04-03 EP EP98914489A patent/EP0972192B8/en not_active Expired - Lifetime
-
1999
- 1999-07-21 US US09/358,738 patent/US6767745B2/en not_active Expired - Fee Related
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP0064216A2 (de) * | 1981-04-29 | 1982-11-10 | Magyar Tudományos Akadémia Müszaki Fizikai Kutato Intézet | Messgerät und Messvorrichtung zur kontaktlosen Messung des mechanischen Spannungszustandes eines ferromagnetischen Blechs |
| GB2219405A (en) * | 1985-05-02 | 1989-12-06 | Aeroquip Corp | Ferrous debris detection system |
| SU1374912A1 (ru) * | 1986-02-11 | 1990-04-15 | V V Mikhajlov | Изmepиteльhый пpeoбpaзobateль mexahичeckиx beличиh |
| SU1597614A1 (ru) * | 1988-07-21 | 1990-10-07 | Тюменский индустриальный институт им.Ленинского комсомола | Способ определени внутренних механических напр жений в упругой среде |
| EP0449586A2 (en) * | 1990-03-26 | 1991-10-02 | Bridgestone Corporation | Apparatus for measuring stress of viscoelastic material |
Non-Patent Citations (4)
| Title |
|---|
| DATABASE WPI Week 9048, Derwent World Patents Index; AN 90-359857 [48], XP002070372 * |
| DATABASE WPI Week 9123, Derwent World Patents Index; AN 91-170340 [23], XP002070371 * |
| LEKATOU A ET AL: "ELASTICITY AND FRACTURE IN PARTICULATE COMPOSITES WITH STRONG AND DEGRADED INTERFACES", JOURNAL OF MATERIALS RESEARCH, vol. 11, no. 5, May 1996 (1996-05-01), pages 1293 - 1304, XP000605771 * |
| WALTHER J F: "ELECTRICAL STABILITY DURING VIBRATION AND ELECTROMAGNETIC PULSE SURVIVABILITY OF SILVER-PLATED GLAS BEAD FILLED EMI SHIELDING GASKETS", NATIONAL SYMPOSIUM ON ELECTROMAGNETIC COMPATIBILITY, DENVER, MAY 23 - 25, 1989, no. -, 23 May 1989 (1989-05-23), INSTITUTE OF ELECTRICAL AND ELECTRONICS ENGINEERS, pages 40 - 45, XP000091392 * |
Cited By (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2003530463A (ja) * | 2000-04-06 | 2003-10-14 | スリーエム イノベイティブ プロパティズ カンパニー | 低マイクロ波損失の低密度誘電体 |
| EP2070688A2 (en) | 2007-12-13 | 2009-06-17 | The Boeing Company | Aircraft structures bonded with adhesive including magnetostrictive material |
| EP2070688B1 (en) * | 2007-12-13 | 2018-08-29 | The Boeing Company | Aircraft structures bonded with adhesive including magnetostrictive material |
| EP2310187B1 (en) * | 2008-07-09 | 2016-12-21 | The Boeing Company | Measurement of strain in an adhesively bonded joint including magnetostrictive material |
| EP2639046B1 (en) * | 2008-07-09 | 2019-05-01 | The Boeing Company | Measurement of strain in an adhesively bondied joint including magnetostrictive material |
| EP2749615A1 (en) * | 2012-12-31 | 2014-07-02 | The Boeing Company | Aircraft structures bonded with adhesive including magnetostrictive material |
Also Published As
| Publication number | Publication date |
|---|---|
| EP0972192B8 (en) | 2003-05-07 |
| CA2285471A1 (en) | 1998-10-15 |
| US6004817A (en) | 1999-12-21 |
| JP4203618B2 (ja) | 2009-01-07 |
| DE69812332D1 (de) | 2003-04-24 |
| EP0972192A1 (en) | 2000-01-19 |
| ES2192322T3 (es) | 2003-10-01 |
| CN1145795C (zh) | 2004-04-14 |
| JP2001521621A (ja) | 2001-11-06 |
| KR100539203B1 (ko) | 2005-12-28 |
| DE69812332T2 (de) | 2003-09-04 |
| CN1252128A (zh) | 2000-05-03 |
| EP0972192B1 (en) | 2003-03-19 |
| US6767745B2 (en) | 2004-07-27 |
| KR20010005960A (ko) | 2001-01-15 |
| AU6883498A (en) | 1998-10-30 |
| US20030129763A1 (en) | 2003-07-10 |
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